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锌对α-淀粉酶活性的抑制作用:来自光谱学和分子动力学模拟的见解

Inhibition of α-amylase Activity by Zn: Insights from Spectroscopy and Molecular Dynamics Simulations.

作者信息

Liao Si-Ming, Shen Nai-Kun, Liang Ge, Lu Bo, Lu Zhi-Long, Peng Li-Xin, Zhou Feng, Du Li-Qin, Wei Yu-Tuo, Zhou Guo-Ping, Huang Ri-Bo

机构信息

Department of Bioengineering, College of Life Science and Technology, Guangxi University, Nanning, Guangxi, 530004, China.

State Key Laboratory for Conservation and Utilization of Subtropical Agro-Bioresources, Guangxi University, Nanning, Guangxi, 530004, China.

出版信息

Med Chem. 2019;15(5):510-520. doi: 10.2174/1573406415666181217114101.

Abstract

BACKGROUND

Inhibition of α-amylase activity is an important strategy in the treatment of diabetes mellitus. An important treatment for diabetes mellitus is to reduce the digestion of carbohydrates and blood glucose concentrations. Inhibiting the activity of carbohydrate-degrading enzymes such as α-amylase and glucosidase significantly decreases the blood glucose level. Most inhibitors of α-amylase have serious adverse effects, and the α-amylase inactivation mechanisms for the design of safer inhibitors are yet to be revealed.

OBJECTIVE

In this study, we focused on the inhibitory effect of Zn2+ on the structure and dynamic characteristics of α-amylase from Anoxybacillus sp. GXS-BL (AGXA), which shares the same catalytic residues and similar structures as human pancreatic and salivary α-amylase (HPA and HSA, respectively).

METHODS

Circular dichroism (CD) spectra of the protein (AGXA) in the absence and presence of Zn2+ were recorded on a Chirascan instrument. The content of different secondary structures of AGXA in the absence and presence of Zn2+ was analyzed using the online SELCON3 program. An AGXA amino acid sequence similarity search was performed on the BLAST online server to find the most similar protein sequence to use as a template for homology modeling. The pocket volume measurer (POVME) program 3.0 was applied to calculate the active site pocket shape and volume, and molecular dynamics simulations were performed with the Amber14 software package.

RESULTS

According to circular dichroism experiments, upon Zn2+ binding, the protein secondary structure changed obviously, with the α-helix content decreasing and β-sheet, β-turn and randomcoil content increasing. The structural model of AGXA showed that His217 was near the active site pocket and that Phe178 was at the outer rim of the pocket. Based on the molecular dynamics trajectories, in the free AGXA model, the dihedral angle of C-CA-CB-CG displayed both acute and planar orientations, which corresponded to the open and closed states of the active site pocket, respectively. In the AGXA-Zn model, the dihedral angle of C-CA-CB-CG only showed the planar orientation. As Zn2+ was introduced, the metal center formed a coordination interaction with H217, a cation-π interaction with W244, a coordination interaction with E242 and a cation-π interaction with F178, which prevented F178 from easily rotating to the open state and inhibited the activity of the enzyme.

CONCLUSION

This research may have uncovered a subtle mechanism for inhibiting the activity of α-amylase with transition metal ions, and this finding will help to design more potent and specific inhibitors of α-amylases.

摘要

背景

抑制α-淀粉酶活性是治疗糖尿病的重要策略。糖尿病的一种重要治疗方法是减少碳水化合物的消化和血糖浓度。抑制α-淀粉酶和葡萄糖苷酶等碳水化合物降解酶的活性可显著降低血糖水平。大多数α-淀粉酶抑制剂具有严重的不良反应,而用于设计更安全抑制剂的α-淀粉酶失活机制尚未明确。

目的

在本研究中,我们聚焦于Zn2+对嗜热栖热放线菌GXS-BL(AGXA)来源的α-淀粉酶的结构和动态特性的抑制作用,该酶与人类胰腺和唾液α-淀粉酶(分别为HPA和HSA)具有相同的催化残基和相似的结构。

方法

在Chirascan仪器上记录有无Zn2+时蛋白质(AGXA)的圆二色(CD)光谱。使用在线SELCON3程序分析有无Zn2+时AGXA不同二级结构的含量。在BLAST在线服务器上对AGXA氨基酸序列进行相似性搜索,以找到最相似的蛋白质序列作为同源建模的模板。应用口袋体积测量仪(POVME)程序3.0计算活性位点口袋的形状和体积,并使用Amber14软件包进行分子动力学模拟。

结果

根据圆二色性实验,Zn2+结合后,蛋白质二级结构明显改变,α-螺旋含量减少,β-折叠、β-转角和无规卷曲含量增加。AGXA的结构模型显示,His217靠近活性位点口袋,Phe178位于口袋外缘。基于分子动力学轨迹,在游离AGXA模型中,C-CA-CB-CG的二面角呈现锐角和平直面两种取向,分别对应活性位点口袋的开放和关闭状态。在AGXA-Zn模型中,C-CA-CB-CG的二面角仅呈现平直面取向。随着Zn2+的引入,金属中心与H217形成配位相互作用,与W244形成阳离子-π相互作用,与E242形成配位相互作用,与F178形成阳离子-π相互作用,这阻止了F178轻易旋转至开放状态,从而抑制了酶的活性。

结论

本研究可能揭示了一种利用过渡金属离子抑制α-淀粉酶活性的微妙机制,这一发现将有助于设计更有效、更具特异性的α-淀粉酶抑制剂。

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